A Study of Approaches for Object Recognition.ppt
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1、1,A Study of Approaches for Object Recognition,Presented by Wyman Wong12/9/2005,2,Outlines,IntroductionModel-Based Object Recognition AAM Inverse Composition AAMView-Based Object Recognition Recognition based on boundary fragments Recognition based on SIFTProposed ResearchConclusion and Future Work,
2、3,Introduction,Object Recognition A task of finding 3D objects from 2D images (or even video) and classifying them into one of the many known object types Closely related to the success of many computer vision applications robotics, surveillance, registration etc. A difficult problem that a general
3、and comprehensive solution to this problem has not been made,4,Introduction,Two main streams of approaches: Model-Based Object Recognition 3D model of the object being recognized is available Compare the 2D representation of the structure of an object with the 2D projection of the modelView-Based Ob
4、ject Recognition 2D representations of the same object viewed at different angles and distances when available Extract features (as the representations of object) and compare them to the features in the feature database,5,Introduction,Pros and Cons of each main stream: Model-Based Object Recognition
5、 Model features can be predicted from just a few detected features based on the geometric constraints Models sacrifice its generalityView-Based Object Recognition Greater generality and more easily trainable from visual data Matching is done by comparing the entire objects, some methods may be sensi
6、tive to clutter and occlusion,6,Model-Based Object Recognition,Commonly used in face recognitionGeneral Steps: Locate the object, locate and label its structure, adjust the models parameters until the model generates an image similar enough to the real object.Active Appearance Models (AAM) have been
7、 proved to be highly useful models for face recognition,7,Active Appearance Models,They model shape and appearance of objects separatelyShape: the vertex locations of a mesh Appearance: the pixels values of a mesh Both of the parameters above used PCA to generalize the face recognition to generic fa
8、ceFitting an AAM: non-linear optimization solution is applied which iteratively solve for incremental additive updates to the shape and appearance coefficients,8,Inverse Compositional AAMs,The major difference of these models with AAMs is the fitting algorithm AAM: additive incremental update shape
9、and appearance parameters ICAAM: inverse compositional update The algorithm updates the entire warp by composing the current warp with the computed incremental warp,9,View-Based Object Recognition,Common approaches: Correlation-based template matching (Li, W. et al. 95) SEA, PDE, etc Not effective w
10、hen the following happens: illumination of environment changes Posture and scale of object changes Occlusion Color Histogram (Swain, M.J. 90) Construct histogram for an object and match it over image It is robust to changing of viewpoint and occlusion But it requires good isolation and segmentation
11、of objects,10,View-Based Object Recognition,Common approaches: Feature based Extract features from the image that are salient and match only to those features when searching all location for matchesFeature types: groupings of edges, SIFT etc Features property preferences: View invariant Detected fre
12、quently enough for reliable recognition DistinctiveImage descriptor is created based on detected features to increase the matching performance Image descriptor = Key / Index to database of features Descriptors property preferences: Invariant to scaling, rotation, illumination, affine transformation
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